IP Library Granted Patent US 10,859,808
Granted Patent B2
US 10,859,808 · App. 16/378,110 · Granted Dec 8, 2020

Microscope objective

Inventor: Takashi Kasahara (Tokyo, JP)
Assignee: OLYMPUS CORPORATION
G02B21/33G02B9/34G02B21/02
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Quick Facts
Patent No.
US 10,859,808
App. No.
16/378,110
Granted
Dec 8, 2020
Kind
B2
Abstract

A immersion microscope objective includes: a first positive lens group that includes at least one positive single lens and a first cemented lens; a second positive lens group that includes a plurality of cemented lenses including a second cemented lens that is the closest to an object; a third negative lens group that includes a first lens component having a concave surface; and a fourth lens group that includes a second lens component that is the closest to the object, the second lens component having a concave surface, wherein the objective satisfies the following conditional expressions: 0.986≤NA ob /N 0≤0.995  (1) 0.0095≤1/( N 1×ν1)≤0.015  (2) where NA ob indicates a numerical aperture of the objective; N0, a refractive index that an immersion liquid has for an e line; N1, a refractive index that the meniscus lens has for the e line; ν1, an Abbe number that the meniscus lens has for a d line.

Claims (57)

1. An immersion microscope objective comprising:

a first lens group that has a positive refractive power and includes a first cemented lens and at least one single lens having a positive refractive power, the first cemented lens consisting of a lens having a positive refractive power and a meniscus lens;

a second lens group that has a positive refractive power and includes a plurality of cemented lenses, the plurality of cemented lenses including a second cemented lens that is closest to an object among the components of the second lens group;

a third lens group that has a negative refractive power and includes a first lens component having a concave surface facing an image; and

a fourth lens group that includes a second lens component that is closest to the object among lens components of the fourth lens group, the second lens component having a concave surface facing the object, wherein

the object, the first lens group, the second lens group, the third lens group, and the fourth lens group are arranged in this order, and

the immersion microscope objective satisfies the following conditional expressions:

0.986≤NA ob /N 0≤0.995  (1)

0.0095≤1/( N 1×ν1)≤0.015  (2)

where NA ob indicates a numerical aperture of an object side of the immersion microscope objective, N0 indicates a refractive index that an immersion liquid used for the immersion microscope objective has for an e line, N1 indicates a refractive index that the meniscus lens included in the first cemented lens has for the e line, and ν1 indicates an Abbe number that the meniscus lens has for a d line.

2. The immersion microscope objective of claim 1 , satisfying the following conditional expression:

0.05≤ D 1/ H 1≤0.335  (3)

where H1 indicates a first ray height that is a maximum ray height of an axial marginal ray within the first lens group, and D1 indicates a thickness of a lens through which the axial marginal ray passes with the first ray height.

3. The immersion microscope objective of claim 1 , wherein

the first lens group includes a plurality of single lenses each having a positive refractive power.

4. The immersion microscope objective of claim 2 , wherein

the first lens group includes a plurality of single lenses each having a positive refractive power.

5. The immersion microscope objective of claim 1 , satisfying the following conditional expression:

0.87≤ R 1/ R 2≤1.22  (4)

where R1 indicates a radius of curvature of a lens surface of an object side of the meniscus lens included in the first cemented lens, and R2 indicates a radius of curvature of a lens surface of an image side of the meniscus lens included in the first cemented lens.

6. The immersion microscope objective of claim 2 , satisfying the following conditional expression:

0.87≤ R 1/ R 2≤1.22  (4)

where R1 indicates a radius of curvature of a lens surface of an object side of the meniscus lens included in the first cemented lens, and R2 indicates a radius of curvature of a lens surface of an image side of the meniscus lens included in the first cemented lens.

7. The immersion microscope objective of claim 3 , satisfying the following conditional expression:

0.87≤ R 1/ R 2≤1.22  (4)

where R1 indicates a radius of curvature of a lens surface of an object side of the meniscus lens included in the first cemented lens, and R2 indicates a radius of curvature of a lens surface of an image side of the meniscus lens included in the first cemented lens.

8. The immersion microscope objective of claim 4 , satisfying the following conditional expression:

0.87≤ R 1/ R 2≤1.22  (4)

where R1 indicates a radius of curvature of a lens surface of an object side of the meniscus lens included in the first cemented lens, and R2 indicates a radius of curvature of a lens surface of an image side of the meniscus lens included in the first cemented lens.

9. The immersion microscope objective of claim 1 , wherein

the fourth lens group includes a plurality of lens components.

10. The immersion microscope objective of claim 2 , wherein

the fourth lens group includes a plurality of lens components.

11. The immersion microscope objective of claim 3 , wherein

the fourth lens group includes a plurality of lens components.

12. The immersion microscope objective of claim 4 , wherein

the fourth lens group includes a plurality of lens components.

13. The immersion microscope objective of claim 5 , wherein

the fourth lens group includes a plurality of lens components.

14. The immersion microscope objective of claim 6 , wherein

the fourth lens group includes a plurality of lens components.

15. The immersion microscope objective of claim 7 , wherein

the fourth lens group includes a plurality of lens components.

16. The immersion microscope objective of claim 8 , wherein

the fourth lens group includes a plurality of lens components.

17. The immersion microscope objective of claim 1 , satisfying the following conditional expression:

0.21≤( hg 2− hg 1)/ t 1≤3  (5)

where hg1 indicates a height of an axial marginal ray at a lens surface of an object side of the second lens component, hg2 indicates a height of the axial marginal ray at a lens surface of an image side of the second lens component, and t1 indicates a thickness that the second lens component has on an optical axis.

18. The immersion microscope objective of claim 2 , satisfying the following conditional expression:

0.21≤( hg 2− hg 1)/ t 1≤3  (5)

where hg1 indicates a height of an axial marginal ray at a lens surface of an object side of the second lens component, hg2 indicates a height of the axial marginal ray at a lens surface of an image side of the second lens component, and t1 indicates a thickness that the second lens component has on an optical axis.

19. The immersion microscope objective of claim 3 , satisfying the following conditional expression:

0.21≤( hg 2− hg 1)/ t 1≤3  (5)

where hg1 indicates a height of an axial marginal ray at a lens surface of an object side of the second lens component, hg2 indicates a height of the axial marginal ray at a lens surface of an image side of the second lens component, and t1 indicates a thickness that the second lens component has on an optical axis.

20. The immersion microscope objective of claim 4 , satisfying the following conditional expression:

0.21≤( hg 2− hg 1)/ t 1≤3  (5)

where hg1 indicates a height of an axial marginal ray at a lens surface of an object side of the second lens component, hg2 indicates a height of the axial marginal ray at a lens surface of an image side of the second lens component, and t1 indicates a thickness that the second lens component has on an optical axis.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 25, 2023
From: OLYMPUS CORPORATION
To: EVIDENT CORPORATION
Reel/Frame 062492/0267 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 8, 2019
From: KASAHARA, TAKASHI
To: OLYMPUS CORPORATION
Reel/Frame 048822/0791 →
Priority Claims (1)
JP 2018-080955 · Apr 19, 2018 · national
Continuity (1)
Related Publication 20190324257A1 · Oct 24, 2019